paper

Novel electronic state of honeycomb iridate CuIrO at high pressure

arXiv:2410.02934 · doi:10.1103/PhysRevB.111.075153

Abstract

CuIrO has attracted recent interest due to its proximity to the Kitaev quantum spin liquid state and the complex structural response observed at high pressures. We use x-ray spectroscopy and scattering as well as electrical transport techniques to unveil the electronic structure of CuIrO at ambient and high pressures. Despite featuring a state at ambient pressure, Ir edge resonant inelastic x-ray scattering reveals broadened electronic excitations that point to the importance of Ir -Cu interaction. High pressure first drives an Ir-Ir dimer state with collapsed and , signaling the formation of molecular orbitals. A novel charge transfer is observed at the onset of phase 5 above 30 GPa at low temperatures, leading to an approximate and valence, with persistent insulating electrical transport seemingly driven by charge segregation of Cu 1+/2+ ions into distinct sites. Concomitant x-ray spectroscopy and scattering measurements through different thermodynamic paths demonstrate a strong electron-lattice coupling, with and / electronic states occurring only in phases 1 and 5, respectively. Remarkably, the charge-transferred state can only be reached if CuIrO is pressurized at low temperature, suggesting that phonons play an important role in the stability of this phase. These results point to the choice of thermodynamic path across interplanar collapse transition as a key route to access novel states in intercalated iridates.

13 pages, 10 figures

References in corpus (15)